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Processing spatial and non-spatial information during the retrieval of motivated memories (B17#)

Processing spatial and non-spatial information during the retrieval of motivated memories (B17#)
在动机记忆检索过程中处理空间和非空间信息(B17
批准号:
389350486
负责人:
金额:
$0.0万
依托单位国家:
德国
项目类别:
Collaborative Research Centres
财政年份:
2017
资助国家:
德国
项目状态:
已结题
起止时间:
2016-12-31 至 2018-12-31

项目摘要

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中文摘要
翻译
动机是成功形成和提取记忆的关键因素之一。内侧颞叶(MTL),包括海马和海马旁皮质区,如外侧和内侧内嗅皮质,在情节记忆中起着至关重要的作用,并从所有调节动机状态的区域接收直接/间接输入。一个流行的情景记忆模型,“双流假说”,提出了空间和非空间信息的处理分离的皮层通路和整合这两个信息流在海马体的水平到一个情节。然而,缺乏这种整合的经验证据,这些皮质通路投射在海马体的不同proximodistal水平,这与信息整合的想法不一致。此外,我们最近带来的证据隔离的空间和非空间子网络沿着proximodistal轴的海马子字段CA 1和CA 3使用食欲任务的存在。这使我们提出了一个全新的概念,描述了海马体内优先处理空间或非空间信息的子网络,这些子网络沿着沿着这条轴分开。形成/提取记忆的动机已经被证明会影响MTL区域被招募用于记忆提取的时间。在本提案中,我们建议通过首先测试空间和非空间子网络中的活动是否根据所涉及的动机行为的类型而不同来进一步表征这些网络。这将通过对在执行空间或非空间版本的厌恶动机任务(恐惧条件反射)和更中性的任务(自发物体识别记忆任务)的大鼠的CA 1和CA 3的近端和远端部分中引起的细胞水平脑活动进行分辨率成像来完成,通过检测用作细胞激活标记物的立即早期基因Arc的产物。第二,我们将研究是否属于同一海马子网络的区域的活动是同步使用在体内电生理学在大鼠执行的食欲任务的子网络已被首次描述(与项目B 01合作)。第三,使用相同的食欲任务,我们将研究这些海马子网络是否是较大的隔离MTL子网络的一部分,通过评估在皮质水平(LEC或MEC)的细胞放电的抑制对特定子网络的招募使用光遗传学的影响。最后,作为翻译的第一步,我们将使用7 T功能磁共振成像技术寻找人类存在这种隔离网络的证据。
英文摘要
Motivation is one of the key elements to successfully forming and retrieving memories. The medial temporal lobe (MTL), which includes the hippocampus and parahippocampal cortical areas such as the lateral and medial entorhinal cortices, plays a crucial role in episodic memory and receives direct/indirect inputs from all areas modulating motivational states. A prevailing model of episodic memory, the ‘two stream hypothesis’, puts forward the processing of spatial and non-spatial information by segregated cortical pathways and the integration of these two information streams at the level of the hippocampus into an episode. Empirical evidence for such an integration is however lacking and these cortical pathways project at distinct proximodistal levels of the hippocampus, which is not consistent with the idea of an integration of the information. Moreover, we have recently brought evidence for the existence of segregated spatial and non-spatial subnetworks along the proximodistal axis of the hippocampal subfields CA1 and CA3 using appetitive tasks. This led us to formulate a completely new concept describing subnetworks preferentially processing spatial or non-spatial information segregated along this axis within the hippocampus. The motivation underlying the memory to be formed/retrieved has been shown to influence at time which MTL area is recruited for the retrieval of memory. In the present proposal, we propose to further characterize these networks by first testing whether activity in the spatial and non-spatial subnetworks differs depending on the type of motivated behavior at stake. This will be done by imaging with resolution to the cell level brain activity elicited in the proximal and distal parts of CA1 and CA3 of rats performing spatial or non-spatial versions of an aversively motivated task (fear conditioning) and a more neutral task (spontaneous object recognition memory task) by detecting the product of the immediate-early gene Arc, used as a marker of cell activation. Second, we will study whether activity in areas belonging to the same hippocampal subnetwork is synchronized using in-vivo electrophysiology in rats performing in the appetitive tasks the subnetworks have been first described with (collaboration with project B01). Third, using the same appetitive tasks, we will investigate whether these hippocampal subnetworks are a part of larger segregated MTL subnetworks by assessing the impact of the inhibition of cell firing at the cortical level (the LEC or the MEC) on the recruitment of the specific subnetworks using optogenetics. Finally, as first translational step, we will look for evidence of the existence of such segregated networks in humans using 7T fMRI techniques.
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